9.2: Inscribed angle (2024)

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Theorem \(\PageIndex{1}\)

Let \(\Gamma\) be a circle with the center \(O\), and \(X, Y\) be two distinct points on \(\Gamma\). Then \(\triangle XPY\) is inscribed in \(\Gamma\) if and only if

\[2 \cdot \measuredangle XPY \equiv \measuredangle XOY.\]

Equivalently, if and only if

\(\measuredangle XPY \equiv \dfrac{1}{2} \cdot \measuredangle XOY\) or \(\measuredangle XPY \equiv \pi + \dfrac{1}{2} \cdot \measuredangle XOY.\)

Proof

the "only if" part. Let \((PQ)\) be the tangent line to \(\Gamma\) at \(P\). By Theorem 9.1.1,

\(2 \cdot \measuredangle QPX \equiv \measuredangle POX\), \(2 \cdot \measuredangle QPY \equiv \measuredangle POY.\)

Subtracting one identity from the other, we get 9.2.1.

"If" part. Assume that 9.2.1 holds for some \(P \not\in \Gamma\). Note that \(\measuredangle XOY \ne 0\). Therefore, \(\measuredangle XPY \ne 0\) nor \(\pi\); that is, \(\measuredangle PXY\) is nondegenerate.

Exercise \(\PageIndex{1}\)

Let \(X, X', Y\), and \(Y'\) be distinct points on the circle \(\Gamma\). Assume \((XX')\) meets \((YY')\) at a point \(P\). Show that

(a) \(2 \cdot \measuredangle XPY \equiv \measuredangle XOY + \measuredangle X'OY'\);

(b) \(\triangle PXY \sim \triangle PY'X'\);

(The value \(OP^2 - r^2\) is called the power of the point \(P\) with respect to the circle \(\Gamma\). Part (c) of the exercise makes it a useful tool to study circles, but we are not going to consider it further in the book.)

Hint

(a) Apply Theorem \(\PageIndex{1}\) for \(\angle XX'Y\) and \(\angle X'YY'\) and Theorem 7.4.1 for \(\triangle PYX'\).

(b) If \(P\) is inside of \(\Gamma\) then \(P\) lies between \(X\) and \(X'\) and between \(Y\) and \(Y'\) in this case \(\angle XPY\) is vertical to \(\angle X'PY'\). If \(P\) is outside of \(\Gamma\) then \([PX) = [PX')\) and \([PY) = [PY')\). In both cases we have that \(\measuredangle XPY = \measuredangle X'PY'\).

Applying Theorem \(\PageIndex{1}\) and Exercise 2.4.2, we get that

\(2 \cdot \measuredangle Y'X'P \equiv 2 \cdot \measuredangle Y'X'X \equiv 2 \cdot \measuredangle Y'YX \equiv 2 \dot \measuredangle PYX.\)

According to Theorem 3.3.1, \(\angle Y'X'P\) and \(\angle PYX\) have the same sign; therefore \(\measuredangle Y'X'P = \measuredangle PYX\). It remains to apply the AA similarity condition.

Exercise \(\PageIndex{2}\)

Three chords \([XX']\), \([YY']\), and \([ZZ']\) of the circle \(\Gamma\) intersect at a point \(P\). Show that

\(XY' \cdot ZX' \cdot YZ' = X'Y \cdot Z'X \cdot Y'Z.\)

Hint: Apply Exerciese \(\PageIndex{1} b three times.

Exercise \(\PageIndex{3}\)

Let \(\Gamma\) be a circumcircle of an acute triangle \(ABC\). Let \(A'\) and \(B'\) denote the second points of intersection of the altitudes from \(A\) and \(B\) with \(\Gamma\). Show that \(\triangle A'B'C\) is isosceles.

Hint

Let \(X\) and \(Y\) be the foot points of the altitudes from \(A\) and \(B\). Suppose that \(O\) denotes the circumcenter.

By AA condition, \(\triangle AXC \sim \triangle BYC\). Then

\(\measuredangle A'OC \equiv 2 \cdot \measuredangle A'AC \equiv - 2 \cdot \measuredangle B'BC \equiv - \measuredangle B'OC.\)

By SAS, \(\triangle A'OC \cong \triangle B'OC\). Therefore, \(A'C = B'C\).

Exercise \(\PageIndex{4}\)

Let \([XY]\) and \([X'Y']\) be two parallel chords of a circle. Show that \(XX' = YY'\).

Exercise \(\PageIndex{5}\)

Watch “Why is pi here? And why is it squared? A geo- metric answer to the Basel problem” by Grant Sanderson. (It is available on YouTube.)

Prepare one question.

FAQs

How do you answer an inscribed angle? ›

The measure of an inscribed angle is half the measure of the intercepted arc. That is, m ∠ A B C = 1 2 m ∠ A O C . This leads to the corollary that in a circle any two inscribed angles with the same intercepted arcs are congruent.

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Can an inscribed angle be 90 degrees? ›

The measure of an inscribed angle is equal to half of the measure of the arc between its sides. Considering that the arc of a semicircle is 180º, any angle inscribed in a semicircle has half that value, that is 90º. Any angle inscribed in a semicircle is right.

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Can an inscribed angle be greater than 180? ›

A2: No, an inscribed angle cannot exceed 180 degrees.

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Would the measure of the inscribed angle be half of 180 degrees or 90 degrees which is a right angle? ›

Corollary (Inscribed Angles Conjecture III ): Any angle inscribed in a semi-circle is a right angle. Proof: The intercepted arc for an angle inscribed in a semi-circle is 180 degrees. Therefore the measure of the angle must be half of 180, or 90 degrees. In other words, the angle is a right angle.

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What are the rules for inscribed angles? ›

The Inscribed Angle Theorem states that the measure of an inscribed angle is half the measure of its intercepted arc. Inscribed angles that intercept the same arc are congruent.

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What are the 4 theorems on inscribed angles? ›

Inscribed Angles Intercepting Arcs Theorem

Inscribed angles that intercept the same arc are congruent. Angles Inscribed in a Semicircle Theorem Angles inscribed in a semicircle are right angles. Cyclic Quadrilateral Theorem The opposite angles of a cyclic quadrilateral are supplementary.

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Are inscribed angles equal? ›

Theorem 70: The measure of an inscribed angle in a circle equals half the measure of its intercepted arc. The following two theorems directly follow from Theorem 70. Theorem 71: If two inscribed angles of a circle intercept the same arc or arcs of equal measure, then the inscribed angles have equal measure.

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Is an inscribed angle always a right angle? ›

The inscribed angle theorem is used in many proofs of elementary Euclidean geometry of the plane. A special case of the theorem is Thales' theorem, which states that the angle subtended by a diameter is always 90°, i.e., a right angle.

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What is an angle called that is greater than 90 but less than 180? ›

The angle which is greater than 90° but less than 180° is known as obtuse angle.

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What angle measures up to 180 degrees? ›

Angles between 0 and 90 degrees (0°< θ <90°) are called acute angles. Angles between 90 and 180 degrees (90°< θ <180°) are known as obtuse angles. Angles that are 90 degrees (θ = 90°) are right angles. Angles that are 180 degrees (θ = 180°) are known as straight angles.

What is an angle inscribed in a semicircle measures 180? ›

If we know that a semi-circle measures 180 degrees and we have an inscribed angle that intercepts an arc of 180 degrees, then the inscribed angle must be half of the arc, or 90 degrees.

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Is the tangent always 90 degrees? ›

A tangent is a line that touches a circle at a point but never passes through it. If a radius then meets this point, the angle between the tangent and the radius will always be 90 degrees. Using this property, we make various calculations related to a circle.

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What is the formula to find the inscribed angle? ›

If we know the measure of the central angle with shared endpoints, then the inscribed angle is just half of that angle. If we know the measure of the arc our inscribed angle intercepts, we just divide that in half to get the measure of the inscribed angle.

How to find the intercepted arc of an inscribed angle? ›

An inscribed angle is formed when two lines pass through the circle's circumference and meet at a vertex on another part of the circle's circumference. The intercepted arc that is formed is equal to the inscribed angle, multiplied by two (intercepted arc measure = inscribed angle * 2).

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What is an inscribed angle in math and examples? ›

In geometry, an inscribed angle is the angle formed in the interior of a circle when two chords intersect on the circle. It can also be defined as the angle subtended at a point on the circle by two given points on the circle. The inscribed angle θ circle.

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